Extending System Reach of Unrepeated Systems Using Cascaded Amplifiers
An unrepeatered transmission system includes a receiver coupled to a receive span; a transmitter coupled to the receive span; and a plurality of cascaded amplifiers in the receive span with dedicated fiber cores to supply one or more optical pumps from the receiver to each amplifier, wherein the plurality of cascaded amplifiers increase system reach by increasing the length of a back span in an unrepeatered link.
The present invention relates to optical communication techniques.
In an unrepeated system, a signal is communicated between a transmitter and a receiver without using inline optical amplifiers whose electrical power source has to be supplied either in mid-link (as in terrestrial systems), or is carried by the same cable that carries the optical signal (as in ultra-long-haul submarine systems). It is often desirable to communicate the signal over the maximum distance possible while maintaining sufficient optical signal-to-noise ratio (OSNR) for detection.
Amplification strategies for unrepeatered transmission systems can use: (a) forward and backward Raman, (b) transmitter-pumped and receiver-pumped ROPAs, (c) transmitter-pumped and receiver-pumped ROPAs with dedicated fibers for pump delivery. Traditionally, forward or backward Raman amplifiers of arbitrary order have been used, as shown in
An unrepeatered transmission system includes a receiver coupled to a receive span; a transmitter coupled to the receive span; and a plurality of cascaded amplifiers in the receive span with dedicated fiber cores to supply one or more optical pumps from the receiver to each amplifier, wherein the plurality of cascaded amplifiers increase system reach by increasing the length of a back span in an unrepeatered link.
Advantages may include one or more of the following. The system provides the ability to extend transmission reach in unrepeatered systems. As mentioned in A3, cascading multiple amplifiers can potentially increase the length of the receive span by a factor of two compared with using only a single amplifier. In current systems using ROPAs where the pump counter-propagates with the signal in the same fiber core, the receive span is typically ˜120-150 km long depending on the type of transmission fiber used, the modulation format of the signal, and the total number of wavelength-division multiplexed (WDM) channels transmitted. When a dedicated fiber is used to supply a single ROPA pump, the receive span can be increased to around 150-180 km. The use of multiple ROPAs should conservatively enable the length of the receive span to increase another 50%, which is an improvement of around 80 km.
Systems and methods are disclosed for cascading multiple amplifiers in the receive span, whose optical pumps are all supplied by different pump delivery fiber cores.
In the exemplary system of
The aforementioned benefit of using cascaded amplifiers in the receive span also applies for distributed Raman amplification. In this case, the amplifiers in
The system uses multiple (>1) cascaded amplifiers pumped from the receiver (as shown in
In the case where the pump delivery cores are different strands of single-mode fiber and the amplifiers are ROPAs, three different pumping schemes are as shown in
In the case where the pump delivery cores are different cores of a multi-core fiber and the amplifiers are ROPAs, we propose using the multi-core erbium-doped fiber shown in
In the case where the pump delivery cores are different cores of a multi-core fiber and the amplifiers are distributed Raman amplifiers, the proposed fiber configuration is shown in
The foregoing use of multiple (>1) cascaded amplifiers increases transmission reach by increasing the length of the back span. A second innovation is the use of different cores of a multi-core fiber to deliver optical pumps to the different ROPAs. When the optical pumps are delivered in this manner, and the multi-core transmission fiber is properly designed with heterogeneous cores wherein each core has slightly different effective index of propagation at the pump wavelength, long-period fiber Bragg gratings with appropriate pitch spacing can be used to couple the pump of a selected core to the signal-carrying core before the multi-core erbium-doped fiber. This avoids the need to use a fan-in fan-out device to spatially demultiplex the signal and pump cores, and also eliminates the need to use WDM pump/signal combiners to couple the pump into the signal core.
As above, in each of the embodiments shown, the present invention has been described with reference to the configuration in which the present invention was carried out with each of the cascaded amplifiers. However, the present invention is not limited to the above described applications. For example, the present invention may also be implemented with a known rearward pumping optical fiber amplifier in which pumping light is entered from the output side of signal light that is fed to an amplification optical fiber.
Furthermore, the present invention is not limited to the optical fiber amplifier of each of the embodiments. The present invention may widely be applied to a variety of configurations including an optical fiber coupler provided to implement optical synthesis and division for a lengthy optical fiber of a different type, such as an optical laser.
While there has been described what is at present considered to be preferred embodiments of this invention, it will be understood that various modifications may be mad therein, and it is intended to cover in the appended claims all such modifications as fall within the true spirit and scope of this invention.
Claims
1. An unrepeatered transmission system, comprising:
- a receiver coupled to a receive span;
- a transmitter coupled to the receive span; and
- a plurality of cascaded amplifiers in the receive span with dedicated fiber cores to supply one or more optical pumps from the receiver to each amplifier, wherein the plurality of cascaded amplifiers increase system reach by increasing the length of a back span in an unrepeatered link.
2. The system of claim 1, wherein the amplifiers are distributed Raman amplifiers, the amplifying medium is a multicore transmission fiber, and optical pump consists of one or more wavelengths that enable progressive Raman power transfer from the pump to the signal in the transmission fiber.
3. The system of claim 1, wherein the amplifiers are remote optically pumped amplifiers (ROPAs), the amplifying medium is an erbium-doped fiber, and the optical pump consist of one or more wavelengths in the neighborhood of 1480 nm corresponding to the absorption band of erbium-doped fiber.
4. The system of claim 3, wherein the optical pump is traveling in a counter-propagating direction relative to the signal inside the amplifying medium of one or more of the ROPAs.
5. The system of claim 3, wherein the optical pump is traveling in a co-propagating direction relative to the signal inside the amplifying medium of one or more of the ROPAs.
6. The system of claim 3, wherein two optical pumps are used, with one traveling in a counter-propagating direction with respect to the signal, and the other traveling in a co-propagating direction relative to the signal inside the amplifying medium of one or more of the ROPAs.
7. The system of claim 3, wherein the dedicated pump delivery cores are multiple strands of single-mode fibers.
8. The system of claim 7, wherein the optical pump(s) are coupled into the signal-carrying fiber core before the amplifying medium using a WDM pump/signal combiner based in single-mode fiber.
9. The system of claim 3, wherein the dedicated pump delivery cores are different cores of a multi-core fiber.
10. The system of claim 9, wherein the optical pump(s) are coupled into the signal-carrying core of the same multi-core fiber before the amplifying medium using a grating.
11. A method for optical communication, comprising:
- using a plurality of cascaded amplifiers in a receive span with dedicated fiber cores to supply one or more optical pumps from a receiver to each amplifier; and
- increasing the length of a back span with a plurality of cascaded amplifiers in an unrepeatered link.
12. The method of claim 11, wherein the amplifiers are distributed Raman amplifiers, the amplifying medium is a multicore transmission fiber, and optical pump consists of one or more wavelengths that enable progressive Raman power transfer from the pump to the signal in the transmission fiber.
13. The method of claim 11, wherein the amplifiers are remote optically pumped amplifiers (ROPAs), the amplifying medium is an erbium-doped fiber, and the optical pump consist of one or more wavelengths in the neighborhood of 1480 nm corresponding to the absorption band of erbium-doped fiber.
14. The method of claim 13, wherein the optical pump is traveling in a counter-propagating direction relative to the signal inside the amplifying medium of one or more of the ROPAs.
15. The method of claim 13, wherein the optical pump is traveling in a co-propagating direction relative to the signal inside the amplifying medium of one or more of the ROPAs.
16. The method of claim 13, wherein two optical pumps are used, with one traveling in a counter-propagating direction with respect to the signal, and the other traveling in a co-propagating direction relative to the signal inside the amplifying medium of one or more of the ROPAs.
17. The method of claim 13, wherein the dedicated pump delivery cores are multiple strands of single-mode fibers.
18. The method of claim 17, wherein the optical pump(s) are coupled into the signal-carrying fiber core before the amplifying medium using a WDM pump/signal combiner based in single-mode fiber.
19. The method of claim 13, wherein the dedicated pump delivery cores are different cores of a multi-core fiber.
20. The method of claim 19, wherein the optical pump(s) are coupled into the signal-carrying core of the same multi-core fiber before the amplifying medium using a grating.
Type: Application
Filed: Oct 4, 2017
Publication Date: Apr 12, 2018
Patent Grant number: 10741992
Inventors: Ezra Ip (West Windsor, NJ), Yue-Kai Huang (Princeton, NJ), Fatih Yaman (Princeton, NJ), Shaoliang Zhang (Princeton, NJ)
Application Number: 15/724,755